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Updated: Aug 15, 2026

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Beyond simple castration: targeting the molecular basis of treatment resistance in advanced prostate cancer
Martin Gleave1, Hideaki Miyake, Kim Chi
1Vancouver General Hospital, D-9, 2733 Heather Street, Vancouver, BC, V5Z 3J5, Canada. gleave@interchange.ubc.ca
Abstract:
Over the past 20 years, research on hormonal treatments for prostate cancer focused on maximizing androgen ablation through combination therapy. Unfortunately, maximal androgen ablation increases treatment-related side effects and expense and has not significantly prolonged time to androgen-independent (AI) progression. Intermittent androgen suppression (IAS) is based on the hypothesis that if tumor cells surviving androgen withdrawal can be forced along a normal pathway of differentiation by androgen replacement, then apoptotic potential might be restored, androgen dependence may be prolonged and progression to androgen independence may be delayed. Observations from animal model studies suggest that progression to androgen independence is delayed by IAS and this strategy is now being evaluated in phase III trials. Another strategy for improving therapies in advanced prostate cancer involves targeting genes that are activated by either androgen withdrawal or chemotherapy to delay or prevent the emergence of the resistant AI phenotype. Targeted inhibition of stress-associated increases in gene expression precipitated by androgen withdrawal or chemotherapy may enhance treatment-induced apoptosis and delay progression to AI disease. Proteins fulfilling these criteria include antiapoptotic members of the Bcl-2 protein family, clusterin, Hsp27, and IGFBP-2 and IGFBP-5. The purpose of this paper is to review the rationale and progress in using targeted gene therapies to enhance tumor cell death after androgen withdrawal or taxane chemotherapy. Antisense oligonucleotides offer one approach to target genes involved in cancer progression, especially those not amenable to small molecule or antibody inhibition. The current status and future direction of several antisense oligonucleotides that have potential clinical use in cancer are also reviewed.
Insights
Intermittent androgen suppression (IAS) may delay prostate cancer progression to androgen independence (AI). Targeted gene therapies, including antisense oligonucleotides, aim to enhance tumor cell death and prevent AI disease emergence.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Hormonal treatments for prostate cancer have historically focused on maximal androgen ablation.
- Maximal androgen ablation increases side effects and expense without significantly prolonging time to androgen-independent (AI) progression.
- Intermittent androgen suppression (IAS) is a strategy hypothesized to restore apoptotic potential and delay AI progression.
Purpose of the Study:
- To review the rationale and progress of targeted gene therapies for enhancing tumor cell death after androgen withdrawal or chemotherapy.
- To explore strategies for delaying or preventing the emergence of the resistant AI phenotype in advanced prostate cancer.
- To discuss the potential of antisense oligonucleotides in targeting genes involved in cancer progression.
Main Methods:
- Review of existing research on androgen suppression therapies and targeted gene inhibition.
- Analysis of animal model studies suggesting IAS delays progression to AI disease.
- Evaluation of targeted inhibition of stress-associated gene expression (e.g., Bcl-2 family, clusterin, Hsp27, IGFBP-2/5).
Main Results:
- IAS is being evaluated in phase III trials based on promising animal model observations.
- Targeted inhibition of specific genes may enhance apoptosis and delay AI progression.
- Antisense oligonucleotides are a viable approach for targeting genes not amenable to other inhibition methods.
Conclusions:
- IAS shows potential for prolonging androgen dependence and delaying AI progression in prostate cancer.
- Targeted gene therapies offer a promising strategy to overcome treatment resistance and enhance apoptosis.
- Antisense oligonucleotides represent a developing therapeutic avenue for advanced prostate cancer, with ongoing review of their clinical potential.
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